Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am having trouble understanding how the following code works. It is a simple piece of code which uses a recursive function to find the factorial of a number. In this case 4*3*2*1 = 24.

.section .data
.section .text
.globl _start
._start:

 pushl $4
 call factorial
 addl $4, %esp

 movl %eax, %ebx
 movl $1, %eax
 int $0x80

 .type factorial, @function
 factorial:
 pushl %ebp
 movl %esp, %ebp
 movl 8(%ebp), %eax

 cmpl $1, %eax
 je end_factorial
 decl %eax
 pushl %eax
 call factorial
 movl 8(%ebp), %ebx
 imull %ebx, %eax

 end_factorial:
 movl %ebp, %esp
 popl %ebp
 ret

I understand everything about the code except I don't see why this section is executed (line 25/26).

movl 8(%ebp), %ebx
imull %ebx, %eax

My understanding (which is clearly wrong), is that the function will keep calling itself until the value of %eax is one. At which point it will multiply '4' by %eax which is one. Which would give a value of 4, which is completely wrong for the factorial of 4. When I run this however, it does in fact give the correct output of 24. I was thinking that the multiplication instruction should be carried out every time the function executes, rather than after the function has finished calling itself.

Can someone please go through the code and explain to me why the code is in fact giving the correct answer of 24, rather than what i think it should be giving (4).

share|improve this question
    
You should learn to use a debugger. These will allow you to step through the code and watch what happens, instruction by instruction. Takes the mystery out of most code. –  Ira Baxter Nov 6 '12 at 3:11
add comment

1 Answer

Remember that the return value of a function always goes into %eax

The assembly function goes through and calls factorial, decrementing %eax by 1 each time and pushing it onto the stack. When %eax is one, it finally returns. This brings you back to call factorial in the recursive call when %eax was 2, which is stored at 8(%ebp) (recall that it was pushed). So now you have 2*1=2=%eax. Now it finishes up and returns again and the process repeats until it returns back to the function that called factorial in the first place.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.